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Machine Learning Engineer II - Behavioral Security Products

Join Abnormal Security as a Machine Learning Engineer II to enhance account takeover detection using advanced machine learning techniques.

Location
Remote - UK
Compensation
Not disclosed
Level
mid
Type
full time · Remote

Posted by employer 3 days ago

First seen on Joblaze 2 days ago

Last verified on the company career page 1 day ago

What you'll build

  • Develop machine learning algorithms and models for behavioral modeling and cybersecurity attack detection
  • Conduct exploratory data analysis, feature engineering, model development and evaluation
  • Monitor and improve production models through feature engineering and ML modeling
  • Participate in code reviews to ensure quality and maintainability of ML systems
  • Stay updated on the latest research in machine learning and AI

Must have

  • Proven experience as a Machine Learning Engineer or similar role (3+ years)
  • Knowledge of machine learning algorithms, statistics, and predictive modeling
  • Proficiency with Python and machine learning toolkits like pandas and scikit-learn
  • Awareness of machine learning operations (MLOps)
  • Familiarity with building data and metric generation pipelines

Nice to have

  • Familiarity with LLMs
  • Previous experience in Cybersecurity
  • Experience with Airflow or similar ML pipeline orchestration tools
  • Experience with large scale ML system and data infrastructure
  • Previous experience in behavioural modeling techniques
  • PhD or equivalent proven experience in ML research

AI in the day-to-day

Abnormal AI uses AI-assisted tools to help prepare for candidate interviews.

Requirements

Experience
3+ years

Not disclosed in this posting: compensation, visa sponsorship.

Joblaze summary

The Machine Learning Engineer II at Abnormal Security focuses on developing and refining machine learning algorithms to detect and prevent account takeover attempts, ensuring robust protection for customers. Key skills include proficiency in Python, experience with machine learning frameworks, and familiarity with MLOps practices. This role is suited for candidates with at least three years of experience in machine learning or data science, ideally with a background in cybersecurity. The team is dedicated to staying ahead of evolving threats, contributing to a rapidly growing cybersecurity startup.

Joblaze insights

  • Listed 2 days ago — first seen on Joblaze September 17, 2026. Last confirmed on Abnormal Security's careers page September 19, 2026.
  • Python appears in 46.9% of 49 comparable mid ai/ml roles in United Kingdom; scikit-learn appears in 2% of 49 comparable mid ai/ml roles in United Kingdom.

Quick facts

Is the Machine Learning Engineer II - Behavioral Security Products role remote?
Yes — Abnormal Security lists this as a fully remote position.
How much experience is required?
At least 3 years of relevant experience for this Machine Learning Engineer II - Behavioral Security Products role.
What's the tech stack?
Joblaze extracted these technologies from the posting: PyTorch, Python, SQL, Spark, TensorFlow, pandas.
What seniority level is this role?
Abnormal Security targets mid-level candidates for this position.
Is this full-time or contract?
Full-time for this Machine Learning Engineer II - Behavioral Security Products role at Abnormal Security.

From the original posting

Abnormal AI is looking for a Machine Learning Engineer to join the Account Takeover Detection team. At Abnormal, we protect our customers against nefarious adversaries who are constantly evolving their techniques and tactics to outwit and undermine the traditional approaches to Security. Abnormal is recognized as a top cybersecurity startup (Leader in the 2024 Gartner Magic Quadrant for Email Security Platforms), securing a Series D funding of $250 million at a $5.1 billion valuation in August 2024. Our 100% YoY growth in annual recurring revenue highlights the trust our behavioral AI system has earned in protecting over 20+% of the Fortune 500. We continue to grow and innovate to stay ahead of the evolving threat landscape.

About the Role

In a landscape where a single successful attack can lead to financial losses of millions of dollars, the Account Takeover team (ATO) is at the forefront of customer protection, playing a central role in building systems that can detect malicious activity and protect customers from account takeovers. The Account Takeover Detection team’s mission is to leverage cutting-edge machine learning technologies for proactive detection and prevention of account takeover attempts, continuously improving ATO capabilities to stay ahead of evolving fraud patterns and safeguard user accounts with unparalleled accuracy and efficiency

This role offers the opportunity to contribute significantly to our team's charter, direction, and roadmap by defining technical goals, addressing customer problems, maintaining production models, and ensuring operational excellence. The ideal candidate will have a background in machine learning, data science, and software engineering, with the ability to design, develop, and implement robust machine learning models and systems in production.

What you will do

  • Contribute to the development of machine learning algorithms and models for behavioral modeling and cybersecurity attack detection.
  • Work with cross-functional teams to understand requirements and translate them into effective machine learning solutions.
  • Conduct exploratory data analysis, feature engineering, model development and evaluation.
  • Work with infrastructure & product engineers to productionize models and new ML-based features
  • Monitor and improve production models through feature engineering, rules, and ML modeling as part of a team effort.
  • Participate in code reviews to ensure the quality and maintainability of ML systems.
  • Stay updated on the latest research in the field of machine learning, data science, and AI.
  • Adopt and contribute to the development of machine learning best practices within the organization.

Must Haves

  • Proven experience as a Machine Learning Engineer or similar role in a commercial environment (3+ years).
  • Knowledge of machine learning algorithms, statistics, and predictive modeling.
  • Proficiency with Python and machine learning toolkits like pandas, scikit-learn, and optionally. pytorch/tensorflow.
  • Awareness of machine learning operations (MLOps) and productionization of ML models best practise..
  • Familiarity with building data and metric generation pipelines, using tools like SQL or Spark, to answer business questions and assess system efficacy.
  • Ability to communicate technical ideas in a clear, non-technical manner.

Nice to Have

  • Familiarity with LLMs
  • Previous experience in Cybersecurity
  • Previous experience with Airflow or similar ML pipeline orchestration tools
  • Experience with large scale ML system and data infrastructure
  • Previous experience in behavioural modeling techniques
  • PhD or equivalent proven experience in ML research
  • Familiarity with cloud computing platforms (AWS, Azure

#LI-ML1

A note on AI in our process:
Abnormal AI uses AI-assisted tools to help our recruiting team prepare for candidate interviews. These tools analyze resume content and role requirements to suggest interview questions and areas for the interviewer to explore.They do not make hiring decisions or screen candidates automatically. Every decision about a candidacy is made by a person. Further, if your application is successful and Abnormal AI makes a conditional offer of employment, we will carry out pre-employment checks which must be successfully completed to progress to a final offer. All processes and pre-employment checks are in line with prevailing legislation and Abnormal AI's policies relevant to our security and privacy standards.

Standard company text repeated across Abnormal Security's postings is omitted here.

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